TECHNICAL FIELD
[0001] The invention relates to a power capacitor with energy limiting properties without
fuses and wherein the design and function combine technical advantages of capacitors
with internal fuses with the simplicity of capacitors with external fuses.
BACKGROUND ART
[0002] Modern power capacitors are characterized by very great energy density, which makes
it important to limit the consequences of a fault. As primary protection against capacitor
explosions, fuses are used in conventional power capacitors. There are two accepted
methods of providing power capacitors with fuses:
a) by means of internal fuses, and
b) by means of external fuses.
[0003] Protection of power capacitors by means of internal fuses is space-demanding and
renders production expensive since each capacitor element is series-connected with
a fuse. However, in relation to the constructionally simpler protection using external
fuses, protection by means of internal fuses entails technical advantages since a
fault leads to disconnection of the faulty element, which results in very small capacitance
changes and increased availability of a power capacitor with internal fuses.
[0004] Currently used power capacitors have inherent limitations which can be derived from
the respective fuse technique:
[0005] Power capacitor units with internal fuses require a certain number of parallel-connected
capacitor elements in each group, which limits the maximum unit voltage to approximately
9 kV. High-voltage capacitor banks must therefore be composed of a large number of
series-connected groups.
[0006] Power capacitors with external fuses have poor protective function at currents higher
than 30 A, which limits the maximum unit current. In addition, a certain number of
parallel-connected capacitor units in each group are required. Power capacitors protected
by means of external fuses must therefore be connected in few series-connected groups
with a relatively large number of parallel-connected capacitor units in each group.
[0007] Fuse-free power capacitor designed according to the invention eliminate the above-mentioned
limitations, and thus, while utilizing the invention, power capacitors can be designed
in the most economical way in all applications.
[0008] The US-A-2 294 099 describes a capacitor battery the connection of which to an electric
network is controlled by protective relays. The condenser battery is built up of individual
power capacitors each or which consists of one string of series connected capacitor
elements surrounded by a casing. Several such individual units are connected in series
and/or in parallel.
SUMMARY OF THE INVENTION
[0009] A power capacitor, which by its design and function combines the technical advantages
of power capacitors with an internal fuse with the simplicity and compactness of power
capacitors with an external fuse, are achieved by arranging, according to the present
invention, a power capacitor comprising a plurality of series-parallel connected capacitor
elements, wherein
a) the power capacitor is composed of a plurality of parallel-connected strings of
capacitor elements,
b) each string comprises a plurality of series-connected capacitor elements,
c) the parallel strings are interconnected only at their end points, and wherein
dielectrics and electrodes included in the capacitor element are arranged such that
the electrodes are welded together in case of breakdown and a solid short circuit
without the risk of partial discharge or restriking occurs.
[0010] Capacitor elements are preferably used in the form of so-called wound foil capacitors
of full-film type, the wound foil being composed of several wound turns of metal foils
serving as electrodes and a solid dielectric arranged between the turns, in the form
of one or more polymer films. In case of a controlled breakdown, the metal foils are
welded together and thus achieve a solid short circuit. Such an element may remain
in operation without the risk of restriking or partial discharge at the fault. A similar
fault in a capacitor element with mixed or paper dielectric causes partial discharge
and development of gas which in the long run, if the fault point is not disconnected
by means of fuses, may blast away the casing surrounding the power capacitor. However,
also a breakdown in a wound foil capacitor of full-film type included in a conventionally
designed power capacitor would lead to partial discharge as a result of damage caused
by the heavy energy development at the fault point of a conventionally designed power
capacitor. This is avoided by designing the power capacitor according to the invention
such that the energy development upon a breakdown is limited.
[0011] In case of breakdown of a capacitor element, this is short-circuited and the unit
capacitance is insignificantly increased. The change in capacity in case of a breakdown
is of the same order of magnitude as when an internal fuse disconnects a faulty capacitor
element in a capacitor with internal fuses. An advantage with the design according
to the invention in relation to a power capacitor with internal fuses is that the
energy development is considerably lower, which results in a minimal risk of damage
to adjacent elements or an external insulation. In addition, a power capacitor according
to the invention is considerably simpler to install and connect during production
than a power capacitor with internal fuses. An additional advantage in relation to
power capacitors with internal fuses is that power capacitors built up according to
the invention are considerably more compact.
[0012] Preferably, a power capacitor according to the invention is composed of at least
three parallel-connected strings of capacitor elements, each string comprising at
least three capacitor elements.
[0013] In an embodiment with capacitor elements in the form of wound foil capacitors of
full-film type, where the wound foil is composed of several wound turns of metal foils
serving as electrodes and a solid dielectric arranged between the turns, in the form
of polymer film, the wound foil capacitors are stacked one above the other and connected
in series. Two busbars are arranged along the whole stack. To these busbars, the strings
of series-connected capacitor elements are connected. Since the strings are connected
alternately to each busbar, the polarity between adjacent strings is changed and great
potential differences along the capacitor stack are avoided. The maximum voltage between
two adjacent wound foil capacitors corresponds to two element voltages. By this design,
which is simplified in relation to known technique, very compact power capacitors
with energy-limiting properties can be designed without fuses. These power capacitors
combine the technical advantages of internal fuses with the simplicity of power capacitors
with external fuses. The energy-limiting design also ensures that, on the occurrence
of a fault, a controlled breakdown, that is, a breakdown with limited and controlled
energy development, arises and the metal foils are welded together and bring about
a solid short circuit without partial discharge or gas development occurring. In addition,
this energy-limiting design permits the capacitor unit with the faulty capacitor element
to remain in operation without the risk of restriking or partial discharge at the
fault point.
[0014] In the foregoing the invention has substantially been exemplified by power capacitors
comprising capacitor elements in the form of wound foil capacitors of full-film type
but is, of course, applicable to other types of capacitor elements in which a controlled
breakdown leads to a solid short circuit such that the capacitor unit with the faulty
capacitor element may remain in operation without the risk of restriking or partial
discharge at the fault point.
BRIEF DESCRIPTION OF THE DRAWING
[0015] The invention will be described in more detail in the following with reference to
the accompanying Figures 1-3. Figures 1 and 2 show power capacitors according to the
prior art with internal and external fuses, respectively. Figure 3 shows a power capacitor
without fuses according to the invention, and Figure 4 shows a preferred embodiment
with the capacitor elements in the form of so-called wound foil capacitors.
DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0016] The power capacitor 10 shown in Figure 1 is protected by means of internal fuses
12. The power capacitor is composed of a plurality of series-connected groups 11.
Each group 11 comprises a plurality of parallel-connected capacitor elements 13, each
element being connected in series with its own fuse 12. For discharge of the power
capacitor, a discharge resistor 14 is arranged for each group 11 of parallel-connected
capacitor elements 13 and is connected in parallel with the group 11. The power capacitor
10 is surrounded by a casing 15. A power capacitor according to the Figure 1 equipped
with internal fuses is complicated and expensive since it comprises a large number
of capacitor elements 13 and fuses 12.
[0017] A power capacitor protected by means of an external fuse is shown in Figure 2. A
plurality of groups 21 of parallel-connected capacitor elements 23 are arranged in
series connection. Contrary to the power capacitor of Figure 1, there are no fuses
directly connected to the capacitor elements 23 but the power capacitor 20 is protected
by means of an external fuse 22 arranged outside the power capacitor 20. For discharge
of the power capacitor 20, a discharge resistor 24 is arranged. The discharge resistor
24 is connected in parallel with the chain of series-connected groups 21 of parallel-connected
capacitor elements 23. However, this means that in case of a fault on an element,
a high discharge energy arises at the fault point, which entails a risk of blasting
of the casing 25 surrounding the power capacitor 20. In addition, great capacitance
variations arise before and after the fuse function.
[0018] Figure 3 shows a power capacitor without fuses according to the invention. The power
capacitor 30 is composed of a plurality of parallel-connected strings 36 of series-connected
capacitor elements 33, the parallel strings 36 being interconnected at their end points
only. For discharge of the power capacitor 30, a discharge resistor 34 is arranged.
The discharge resistor 34 is connected in parallel with the strings 36 of series-connected
capacitor elements 33. The power capacitor has no fuses, which means that in case
of breakdown of a capacitor element 33, the element 33 is short-circuited and the
unit capacitance is insignificantly increased. The change of capacitance is of the
same order of magnitude as when an internal fuse disconnects a faulty capacitor element
in a capacitor unit with internal fuses. Like the power capacitors in Figures 1 and
2, the power capacitor 30 is shown enclosed within a casing 35. An advantage of the
design according to the invention in relation to a power capacitor with internal fuses
is that the energy development is considerably lower, which minimizes the risk of
damage to adjoining capacitor elements or external insulation. In addition, a power
capacitor according to the invention is considerably easier to install and connect
during production than a power capacitor with internal fuses. An additional advantage
in relation to power capacitors with internal fuses is that power capacitors designed
according to the invention will be considerably more compact.
[0019] In a preferred embodiment, shown in Figure 4, with capacitor elements in the form
of so-called wound foil capacitors 43, where the wound foil 43 is built up of a plurality
of wound turns of metal foils serving as electrodes and a solid dielectric arranged
between the turns, in the form of polymer film, the wound foil capacitors 43 are arranged
stacked on top of each other and connected in series by means of connection devices
44. Two busbars 41, 42 are arranged along the entire stack 40, one busbar on each
side. To these busbars 41, 42 there are connected the strings of series-connected
wound foil capacitors 43 by means of the connections 45. The strings are connected
alternately to the busbars 41, 42 which are each arranged on one side, the polarity
thus changing between adjoining strings such that great potential differences along
the capacitor stack 40 are avoided. The maximum voltage between two adjoining wound
foil capacitors 43 corresponds to two element voltages. By this design, which is simplified
in relation to the prior art, very compact, fuse-free power capacitors with energy
limiting properties may be designed, which combine the technical advantages of power
capacitors with internal fuses with the simplicity of power capacitors with external
fuses. The energy limiting design also ensures that, on the occurrence of a fault,
a controlled breakdown, that is, a breakdown with a limited and controlled energy
development, arises, the metal foils included in the wound foil capacitors 43 thus
being welded together and achieving a solid short circuit without partial discharge
or gas development arising. In addition, this energy limiting design permits the faulty
capacitor element to remain in operation without the risk of restriking or partial
discharge at the fault point.
1. A power capacitor surrounded by a casing and comprising a plurality of parallel-connected
strings (36) of capacitor elements (33, 43), wherein each string comprises a plurality
of series-connected capacitor elements without internal fuses connected in series
with each capacitor element (33,43),
characterized in
- that the parallel strings are interconnected at their end points only and
- that the capacitor elements (33, 43) are adapted such that, upon a breakdown, their
capacitance forming electrodes are welded together such as to form a solid short circuit
between the faulty capacitance forming electrodes.
2. A power capacitor according to claim 1, characterized in that the power capacitor (30,40) is composed of at least three parallel-connected strings
(36) of capacitor elements (33,43) and that each string comprises at least three series-connected
capacitor elements.
3. A power capacitor according to claim 1 or claim 2, characterized in that capacitor elements in the form of wound foil capacitors (43), where the wound foil
capacitor is composed of wound turns of metal foils serving as electrodes and a solid
dielectric arranged between the turns, in the form of polymer film, are arranged stacked
on top of each other and connected in series by means of connection devices (44) and
wherein the strings of series-connected wound foil capacitors are connected to busbars
(41,42), arranged along the stack (40), by means of connections (45).
4. A power capacitor according to claim 3, characterized in that the strings of series-connected wound foil capacitors (43) are connected alternately
to the busbars (41,42) which are each arranged on one side, the polarity thus being
changed between adjacent strings to avoid great potential differences along the capacitor
stack (40).
1. Leistungskondensator, der von einem Gehäuse umgeben ist und eine Vielzahl von parallel
geschalteten Ketten (36) aus Kondensatorelementen (33, 43) enthält, wobei jede Kette
aus einer Vielzahl von in Reihe geschalteten Kondensatorelementen besteht, ohne daß
jedes Kondensatorelement (33, 43) mit einer inneren Sicherung in Reihe geschaltet
ist,
dadurch gekennzeichnet, daß
- die parallelen Ketten nur an ihren Endpunkten miteinander verbunden sind und
- die Kondensatorelemente (33, 43) so beschaffen sind, daß bei einem Durchschlag ihre
die Kapazität bildenden Elektroden derart miteinander verschweißen, daß sie einen
satten Kurzschluß zwischen den die fehlerhafte Kapazität bildenden Elektroden bilden.
2. Leistungskondensator nach Anspruch 1, dadurch gekennzeichnet, daß der Leistungskondensator (30, 40) aus mindestens drei parallel geschalteten
Ketten (36) aus Kondensatorelementen (33, 43) zusammengesetzt ist und daß jede Kette
mindestens drei in Reihe geschaltete Kondensatorelemente enthält.
3. Leistungskondensator nach Anspruch 1 oder 2, dadurch gekennzeichnet, daß die Kondensatorelemente, die als foliengewickelte Kondensatoren (43) aus gewickelten
Lagen aus als Elektroden dienenden Metallfolien und einem Dilektrikum in Gestalt eines
Polymerfilms zwischen den Lagen aufgebaut sind, übereinander gestapelt angeordnet
sind und mittels Verbindungsvorrichtungen (44) in Reihe geschaltet sind und daß die
Ketten aus in Reihe geschalteten foliengewickelten Kondensatoren an längs des Stapels
(40) angeordneten Sammelschienen (41, 42) mittels Verbindungen (45) angeschlossen
sind.
4. Leistungskondensator nach Anspruch 3, dadurch gekennzeichnet, daß die Ketten aus in Reihe geschalteten foliengewickelten Kondensatoren (43) abwechselnd
an Sammelschienen (41, 42), die an je einer Seite angeordnet sind, angeschlossen sind,
so daß die Polarität zwischen benachbarten Ketten wechselt zur Vermeidung großer Potentialunterschiede
längs des Kondensatorstapels (40).
1. Condensateur de puissance entouré d'un boîtier et comprenant une pluralité de chaînes
(36) connectées en parallèle d'éléments (33,43) condensateurs, chaque chaîne comprenant
une pluralité d'éléments condensateurs connectés en série sans fusibles internes connectés
en série à chaque élément condensateur (33,43),
caractérisé en ce que
- les chaînes parallèles sont interconnectées à leurs points d'extrémité uniquement,
et
- les éléments (33,43) condensateurs sont adaptés de manière que, après un claquage,
leurs électrodes formant capacités sont soudées mutuellement de manière à former un
court-circuit solide entre les électrodes défectueuses formant capacités.
2. Condensateur de puissance suivant la revendication 1, caractérisé en ce que le condensateur
(30, 40) de puissance est constitué d'au moins trois chaînes (36) connectées en parallèle
d'éléments (33,43) condensateurs et en ce que chaque chaîne comporte au moins trois
éléments condensateurs connectés en série.
3. Condensateur de puissance suivant la revendication 1 ou la revendication 2, caractérisé
en ce que des éléments condensateurs sous la forme de condensateurs (43) à rubans
enroulés, où les condensateurs à rubans enroulés sont constitués de spires enroulées
de rubans métalliques servant d'électrodes et d'un diélectrique solide disposé entre
les spires, sous la forme d'un film polymère, sont disposés empilés les uns au-dessus
des autres et connectés en série au moyen de dispositifs (44) de connexion et dans
lequel les chaînes de condensateurs à rubans enroulés connectés en série sont connectées
à des barres (41,42) omnibus, disposées suivant l'empilement (40), au moyen de connexions
(45).
4. Condensateur de puissance suivant la revendication 3, caractérisé en ce que les chaînes
de condensateurs (43) à rubans enroulés connectés en série sont connectées en alternance
aux barres (41,42) omnibus qui sont chacune disposées sur un côté, la polarité étant
ainsi changée entre des chaînes adjacentes pour éviter de grandes différences de potentiels
suivant l'empilement (40) de condensateurs.